End of training
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README.md
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---
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base_model: black-forest-labs/FLUX.1-dev
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library_name: diffusers
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license: other
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tags:
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- text-to-image
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- diffusers-training
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- diffusers
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- lora
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- flux
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- flux-diffusers
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- template:sd-lora
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instance_prompt: a <s0><s1> hugging face emoji
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widget: []
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---
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<!-- This model card has been generated automatically according to the information the training script had access to. You
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should probably proofread and complete it, then remove this comment. -->
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# Flux DreamBooth LoRA - linoyts/huggy_flux_2000_ti_025_rank_16_w_t5
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<Gallery />
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## Model description
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These are linoyts/huggy_flux_2000_ti_025_rank_16_w_t5 DreamBooth LoRA weights for black-forest-labs/FLUX.1-dev.
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The weights were trained using [DreamBooth](https://dreambooth.github.io/) with the [Flux diffusers trainer](https://github.com/huggingface/diffusers/blob/main/examples/dreambooth/README_flux.md).
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Was LoRA for the text encoder enabled? False.
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Pivotal tuning was enabled: True.
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## Trigger words
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To trigger image generation of trained concept(or concepts) replace each concept identifier in you prompt with the new inserted tokens:
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to trigger concept `TOK` → use `<s0><s1>` in your prompt
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## Download model
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[Download the *.safetensors LoRA](linoyts/huggy_flux_2000_ti_025_rank_16_w_t5/tree/main) in the Files & versions tab.
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## Use it with the [🧨 diffusers library](https://github.com/huggingface/diffusers)
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```py
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from diffusers import AutoPipelineForText2Image
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import torch
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from huggingface_hub import hf_hub_download
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from safetensors.torch import load_file
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pipeline = AutoPipelineForText2Image.from_pretrained("black-forest-labs/FLUX.1-dev", torch_dtype=torch.bfloat16).to('cuda')
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pipeline.load_lora_weights('linoyts/huggy_flux_2000_ti_025_rank_16_w_t5', weight_name='pytorch_lora_weights.safetensors')
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embedding_path = hf_hub_download(repo_id='linoyts/huggy_flux_2000_ti_025_rank_16_w_t5', filename='huggy_flux_2000_ti_025_rank_16_w_t5_emb.safetensors', repo_type="model")
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state_dict = load_file(embedding_path)
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pipeline.load_textual_inversion(state_dict["clip_l"], token=["<s0>", "<s1>"], text_encoder=pipeline.text_encoder, tokenizer=pipeline.tokenizer)
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pipeline.load_textual_inversion(state_dict["t5"], token=["<s0>", "<s1>"], text_encoder=pipeline.text_encoder_2, tokenizer=pipeline.tokenizer_2)
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image = pipeline('a <s0><s1> hugging face emoji').images[0]
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```
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For more details, including weighting, merging and fusing LoRAs, check the [documentation on loading LoRAs in diffusers](https://huggingface.co/docs/diffusers/main/en/using-diffusers/loading_adapters)
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## License
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Please adhere to the licensing terms as described [here](https://huggingface.co/black-forest-labs/FLUX.1-dev/blob/main/LICENSE.md).
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## Intended uses & limitations
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#### How to use
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```python
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# TODO: add an example code snippet for running this diffusion pipeline
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```
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#### Limitations and bias
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[TODO: provide examples of latent issues and potential remediations]
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## Training details
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[TODO: describe the data used to train the model]
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huggy_flux_2000_ti_025_rank_16_w_t5_emb.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:70c74a6d2ebd284745a1a2ee92fbf3350303232dc66bd34b24253557d99ac6ec
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size 22672
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pytorch_lora_weights.safetensors
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version https://git-lfs.github.com/spec/v1
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oid sha256:7e7f36cbbc4dd154dd0df9e5a739570e6dbd0b810cf1f5403bb258e1668500a3
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size 37406344
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